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Properties of Graphite Fiber Reinforced Copper Matrix Composites for Space Power ApplicationsThe thermal and mechanical properties of pitch-based graphite fiber reinforced copper matrix (Gr/Cu) composites usable for space applications such as radiator fins were investigated. Thermal conductivity was measured as a function of fiber volume fraction and architecture. Results showed for unidirectional P-100 Gr/Cu composites, the longitudinal thermal conductivity was nearly independent of fiber volume fraction. Transverse thermal conductivities (perpendicular to the fibers) were strongly affected by the fiber volume fraction with higher volume fractions resulting in lower thermal conductivities. The effect of architecture on thermal conductivity followed the cosine squared law for simple architectures. Insufficient data are available currently to model more complex architectures, but adding fibers in the direction of the heat flow increases the thermal conductivity as low conductivity plies are supplemented by high conductivity plies. Thermal expansion tests were conducted on the Gr fibers and Gr/Cu composites. The results show a considerable thermal expansion mismatch between the fibers and the Cu matrix. The longitudinal thermal expansion showed a strong dependence on the architecture of the Gr/Cu composites. The composites also show a thermal expansion hysteresis. The hysteresis was eliminated by an engineered interface. Mechanical testing concentrated on the dynamic modulus and strength of the composites. The dynamic modulus of the Gr/Cu composites was 305 GPa up to 400 C, a value equivalent to Be. The strengths of the composites were less than expected, but this is attributed to the poor bond across the interface between the Gr fibers and Cu matrix. Testing of composites with an engineered interface is expected to yield strengths nearer the values predicted by the rule of mixtures.
Document ID
19940024705
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Ellis, David L.
(Case Western Reserve Univ. Cleveland, OH, United States)
Date Acquired
September 6, 2013
Publication Date
August 1, 1992
Subject Category
Composite Materials
Report/Patent Number
E-7491
NASA-CR-191026
NAS 1.26:191026
Report Number: E-7491
Report Number: NASA-CR-191026
Report Number: NAS 1.26:191026
Accession Number
94N29208
Funding Number(s)
PROJECT: RTOP 590-13-11
CONTRACT_GRANT: NCC3-94
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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